
Overview
This algorithm uses a neural network built in Tensorflow to predict anomalies from transaction and/or sensor data feeds. The model outputs predictions and reconstruction errors for the observations that highlight potential anomalies. Using an adjustable lower order basis representation of the space, the model includes 2 hidden layers and default 0.01 learning rate for minimizing loss on a RMS objective function.
Highlights
- Tensorflow, Machine Learning, Neural Network, Anomaly Detection
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Amazon SageMaker algorithm
An Amazon SageMaker algorithm is a machine learning model that requires your training data to make predictions. Use the included training algorithm to generate your unique model artifact. Then deploy the model on Amazon SageMaker for real-time inference or batch processing. Amazon SageMaker is a fully managed platform for building, training, and deploying machine learning models at scale.
Version release notes
Beta release
Additional details
Inputs
- Summary
Must have numeric columns, 'ProdPerMinute', 'Pressure', 'BaroPressure', 'WasteGas', 'LossOfEfficiency', 'SR', 'PowerIn', '1dp', '2dp', '3dp', '4dp', '5dp', '6dp' and String columns, 'Plant', and 'ProductLine' with a column 'TimeStamp' in format '%m/%d/%Y %H:%M' i.e. 1/10/2010 0:03. See notebook for usage instructions
- Input MIME type
- text/csv
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